BACKGROUND
[0001] This invention relates generally to a gas mixer for mixing two gas streams. The disclosure
is particularly suited to a gas mixer for mixing a hydrocarbon-containing gas stream
with an oxygen-containing gas stream. The disclosure features a design of a gas mixer
which minimizes the potential for ignition of the two gases in the mixer. An example
of where this invention has utility is gas mixers used in the industrial production
of ethylene oxide.
[0002] The chemical compound ethylene oxide (chemical formula C
2H
4O) is an important industrial chemical used as an intermediate in the production of
ethylene glycol (the main component of automotive antifreeze) and other chemicals.
Ethylene oxide is also used as a sterilant for foods and medical supplies. It is a
colorless flammable gas at room temperature, and can be cooled and stored as a liquid.
[0003] Ethylene oxide first achieved industrial importance during World War I as a precursor
to both ethylene glycol and the chemical weapon mustard gas. In 1931, Theodore Lefort,
a French chemist, discovered a means to prepare ethylene oxide directly from ethylene
and oxygen, using silver as a catalyst. Since 1940, almost all ethylene oxide produced
industrially has been made using this method.
[0004] In current industrial processes, ethylene oxide is produced when ethylene (CH
2=CH
2) and oxygen (O
2) react on a silver catalyst at 200-300 °C showing large Ag nanoparticles supported
on Alumina. Typically, chemical modifiers such as chlorine are also included. Pressures
used are in the region of 1-2MPa. The chemical equation for this reaction is:
CH
2=CH
2 + ½ O
2 → C
2H
4O
[0005] In ethylene oxide production systems, a gas mixer is used to mix the hydrocarbon
and oxygen gas streams just upstream of the reaction chamber where the silver catalyst
is present. The gas mixer is typically constructed in the form of a vessel or pipe.
The vessel includes an inlet manifold for each of the two gases. The vessel is sometimes
constructed with a main outer pipe containing the hydrocarbon-containing gas stream
and internal concentric tubes or "fingers" which contain the oxygen stream. Mixing
occurs at the point where the internal tubes end, where the oxygen gas flowing out
of the fingers meets the main stream of hydrocarbon-containing gas flowing in the
outer tube. This basic design is described in
U.S. patent 3,706,534.
[0006] The art has long recognized that there is a risk of ignition of a hydrocarbon-containing
gas stream (e.g., a stream of gas containing for example ethylene mixed with other
hydrocarbon gases) at the point where it is combined with an oxygen gas in a gas mixer.
Ignition can occur when a particle (e.g. a piece of sand, rust or pipe scale) entrained
in the hydrocarbon or oxygen gas stream strikes a metallic surface in the mixer, e.g.,
the wall of the mixer, thereby producing a spark. If the spark occurs in the hydrocarbon
stream in the highly flammable zone e.g., at, or close to, the point of mixing of
the two gas streams, ignition can occur. The ignition damages the gas mixer and also
requires an interrupt of production to suppress the ignition and allow the gas mixer
to cool before recommencing production. The flammable region is confined to the mixing
zone of the two gases. The hydrocarbon-containing gas as well as the reactor feed
blend are below the lower O
2 flammability limit - i.e., too rich to bum.
[0007] The art has devised a variety of gas mixer designs. Some of the designs are specifically
directed to reducing the risk of ignition of hydrocarbon and oxygen gas stream. The
known prior art includes the following patent documents, in addition to the above-cited
'534 patent:
U.S. 4,573,803;
U.S. 3,702,619;
U.S. 4,256,604;
U.S 4,415,508;
U.S. 6,657,079;
U.S. 2003/0021182;
U.S. 3,518,284;
U.S. 4,390,346;
U.S. 3,237,923;
U.S. 3,081,818;
U.S. 2,614,616 and
U.S. 6,840,256.
SUMMARY
[0008] The present disclosure provides for a gas mixer which is designed for mixing two
gas streams, e.g., a hydrocarbon-containing gas stream and an oxygen-containing gas
stream, for example in the production of ethylene oxide. The gas mixer includes several
features designed to reduce the potential of ignition events in the gas mixer. The
present disclosure achieves this result through a low-shear mixing design utilizing
a multiplicity of long, parallel, oxygen injection pipes placed within a vessel or
pipe carrying the hydrocarbon-containing gas. The oxygen pipes are oriented such that
their openings are substantially coaxially aligned with the flow direction of the
hydrocarbon-containing gas stream at the mixing point. The coaxial gas flow path in
the oxygen injection pipes minimizes the frequency and energy of particle impacts
with the internal pipe walls, so that incandescent particles are not generated shortly
upstream of the mixing point where the combined mixed gases are potentially ignitable.
The low-shear design, due to coaxial flow at the mixing point, also minimizes the
relative velocity of oxygen with respect to hydrocarbon-containing gas within the
mixing plume and hence the likelihood of breaking up larger particles entrained within
the hydrocarbon-containing gas stream. An additional potential source of incandescent
particles is break-up of larger particles such as corrosion-derived flakes present
in the hydrocarbon-containing gas stream. This breakup is minimized by the low shear
design of the oxygen pipes. The occurrence of particles in the hydrocarbon-containing
gas stream is preferably minimized in the first instance by using corrosion-resistant
materials for the pipes carrying the hydrocarbon gas.
[0009] Unless they are fully oxidized, metal-containing particles entrained in the oxygen
feed are most hazardous since impact with surfaces in oxygen at elevated pressure
can result in ignition of the particles. If the particles are sufficiently hot when
they arrive at the mixing zone, this can result in ignition of the ignitable region
of the mixing plume. The likelihood of producing such an incandescent or hot particle
increases as impact energy increases. However, typical particles are sufficiently
small to burn and cool safely if particle ignition occurs sufficiently far upstream
of the mixing zone. Apart from minimizing the production of such particles in the
first place, the present inventors have appreciated that it is desirable to actually
foster particle impact and burning in the oxygen gas stream upstream of the mixing
zone, and sufficiently far upstream such that any particles surviving impact and ignition
have cooled sufficiently such that when they are introduced with the hydrocarbon-containing
gas at the mixing point ignition will not occur.
[0010] Thus, in another aspect of this disclosure, the gas mixer of this disclosure includes
the use of a labyrinth in the oxygen gas stream which includes structures (e.g., an
array of closely spaced corrugated walls) defining a tortuous path through which the
oxygen-containing gas stream must flow upstream of the oxygen pipes in the gas mixer.
The wall structures of the labyrinth are designed to foster or promote impacts and
burning of particles (e.g., rust or scale) entrained in the oxygen gas stream. The
labyrinth maximizes the probability of particle impact far upstream of the ignitable
mixing zone and burning up of the particle. The feature of incorporation of the labyrinth
into a gas stream is preferably used in conjunction with the use of long oxygen injection
tubes to maximize the time available for these particles to safely cool after striking
the walls of the labyrinth.
[0011] The principles of the present disclosure can be used either alone or in combination
with additional safeguards for minimizing the number and size of particles entering
the gas mixer from the oxygen feed system. For example, the features of this design
can be incorporated into a system which includes a subsystem upstream of the gas mixer
and labyrinth, such as filter or wet scrubber, to remove particles from the oxygen
gas stream, or to filter the gas stream such that any particles entering the gas mixer
are sufficiently small to burn and cool upstream of the gas mixing zone, i.e., within
the labyrinth.
[0012] In one particular aspect of this disclosure, a gas mixer is disclosed for mixing
a first gas stream (e.g., an oxygen-containing gas stream) with a second gas stream
(e.g., hydrocarbon-containing gas) at a mixing point within the gas mixer. The gas
mixer features a) an impact labyrinth in the first gas stream, the impact labyrinth
comprising structures forming a tortuous path through which the first gas stream must
pass en route to the mixing point, the impact labyrinth fostering ignition of particles
entrained in the first gas stream; b) a plurality of elongate pipes each having an
opening, the plurality of pipes receiving the first gas stream from the impact labyrinth
and carrying the first gas stream to the mixing point, and c) a vessel carrying the
second gas stream, the second gas stream having a flow direction, wherein the plurality
of pipes are positioned within the vessel and the openings of the pipes are substantially
coaxially aligned with the flow direction of the second gas stream at the mixing point.
[0013] In another aspect, the labyrinth feature of this disclosure can be retrofit into
existing gas mixers. Thus, in this aspect an improvement to a gas mixer for mixing
an oxygen gas stream with a hydrocarbon-containing gas stream is disclosed, the improvement
being providing an impact labyrinth with the gas mixer, the impact labyrinth having
an inlet receiving the oxygen gas stream and structures forming a tortuous path through
which the oxygen gas stream must pass and an outlet. The gas mixer includes pipes
supplying the oxygen gas to a mixing point where the two gas streams mix in the gas
mixer. The structures forming the tortuous path in the labyrinth foster ignition of
particles entrained in the oxygen gas stream.
[0014] In still another aspect, a method is disclosed of mixing a hydrocarbon-containing
gas stream with an oxygen-containing gas stream, comprising the steps of: supplying
the oxygen gas stream to an impact labyrinth comprising structures forming a tortuous
path through which the oxygen gas stream must pass; flowing the oxygen gas stream
through the labyrinth; directing the oxygen gas stream from the labyrinth into a plurality
of pipes; and directing the oxygen gas stream out of the pipes into the hydrocarbon-containing
gas stream at a mixing point within a gas mixer.
[0015] A primary application of this invention is in the direct oxidation ethylene oxide
process, but the invention may be employed for other applications where pressurized
oxygen is mixed into hydrocarbon streams where a potential ignition hazard exists.
BRIEF DESCRIPTION OF THE DRAWINGS
[0016]
Figure 1 is a schematic representation of an oxygen gas mixer featuring an impact
labyrinth in the oxygen stream and elongate oxygen pipes positioned within a vessel
containing a hydrocarbon-containing gas stream featuring a low shear design.
Figure 1A is a detailed view of the end of the oxygen pipes of Figure 1 showing the
mixing zone where the gases are mixed.
Figure 2 is a schematic representation of an alternative embodiment of the gas mixer
of Figure 1.
Figure 3 is a schematic representation of alternative embodiment of the gas mixer
of Figures 1 and 2.
Figure 4 is a detailed view of a portion of the labyrinth of Figures 1-3 showing the
labyrinth featuring structures in the form of corrugated walls which define a tortuous
path. The labyrinth is designed to promote impact of particles entrained in the oxygen
gas stream.
Figure 5 is a schematic representation of a gas mixing system including the gas mixer
of this disclosure, a wet scrubber in the oxygen gas stream upstream of the gas mixer,
and a reaction chamber downstream of the gas mixer.
DETAILED DESCRIPTION
[0017] Figure 1 is a schematic representation of a gas mixer 10 in accordance with one representative
embodiment of this disclosure. The gas mixer features a main vessel or pipe 12 for
carrying a hydrocarbon-containing gas stream. The vessel 12 has an inlet 14 for receiving
a hydrocarbon-containing gas stream 16 from a source (not shown). The hydrocarbon-containing
gas stream 16 flows through the inlet 14 and into the vessel 12. The flow of gas is
shown by the arrows 18. The hydrocarbon-containing gas is mixed with oxygen-containing
gas flowing out of oxygen fingers or pipes 30 at a mixing point or zone 20.
[0018] The oxygen-containing gas (e.g., pure oxygen, oxygen enriched air, or air) is introduced
into the gas mixer 10 via an inlet 22. The oxygen gas is supplied to a labyrinth 24
having an inlet 26. The labyrinth includes structures, such as an array of parallel
corrugated walls 25 (shown in greater detail in Figure 4) which define a tortuous
path through which the oxygen gas stream must flow. The corrugated walls 25 are designed
to foster impact of entrained particles within the oxygen gas stream. In particular,
as shown in Figure 4, the oxygen stream follows a winding path 50 between the parallel
corrugated walls 25 and the momentum of any particles contained in the gas stream
will carry such particles into the walls 25, producing impact and ignition (burning)
of the particles. While Figure 4 shows one possible construction of the labyrinth,
other constructions are possible and no particular arrangement of walls or other structures
within the labyrinth is considered to be particularly critical. The corrugated structures
25 are preferably made from a material such as carbon steel, stainless steel, and
Hastelloy C which is designed to promote sparking and ignition of entrained particles.
As will be appreciated by someone skilled in the art, the materials used in the labyrinth
must follow industry guidelines on minimum thickness and maximum velocity to prevent
ignition of the corrugated structures themselves.
[0019] The oxygen gas flows out of the labyrinth 24 into an oxygen gas manifold 28. The
pipes 30 have one end 32 which is open to the manifold 28 and allows gas to enter
the pipes 30. The pipes have a sufficient length (e.g., 7 to 10 meters), and the oxygen
flow velocity is sufficiently low, such that any particles surviving impact in the
labyrinth 24 cool sufficiently by the time they exit the open opposite end 34 of the
pipes 30 that ignition in the mixing zone 20 does not occur (see the detailed view
Figure 1A of the end of the oxygen pipe 30 and the mixing zone 20). Additionally,
the pipes 30 are also preferably constructed and arranged such that they are substantially
straight for the entire length between the ends 32 and 34, as shown in Figure 1. This
further minimizes the likelihood of an impact of a particle in the oxygen gas stream
along the length of the pipe 30.
[0020] The outlet 34 of the pipes 30 are aligned with the flow direction of the hydrocarbon-containing
gas stream 18 at the mixing zone 20, thereby minimizing shear of the hydrocarbon-containing
gas stream and minimizing the likelihood of break-up of any entrained particles in
the hydrocarbon-containing gas stream. In one embodiment, the vessel 12 includes a
longitudinal axis 40 and the pipes 30 are all oriented parallel to the axis 40.
[0021] The gas mixer 10 may also include supports 44 supporting the pipes 30 within the
vessel 10 to prevent vibration of the pipes 30. In some embodiments, supports 44 may
be constructed of perforated plate, grid, screen, or other geometry to serve the dual
purpose of supporting the tubes as well as straightening the hydrocarbon gas flow
profile.
[0022] Figure 2 is a schematic illustration of an alternative embodiment to gas mixer 10.
The hydrocarbon-containing gas stream 16 is introduced on the side of the vessel 12
via an inlet 14. A flow straightener 42 is provided in the vessel 12 to provide for
parallel flow of the hydrocarbon-containing gas stream. The oxygen gas stream is supplied
via an inlet 22 to a labyrinth 24. The labyrinth 24 includes corrugated walls 25.
The construction of the labyrinth 24 is basically the same as shown in Figures 1 and
4. The oxygen manifold 28 is positioned within the vessel 12. The pipes 30 have one
end 32 connected to the manifold 28 and the opposite end 34 aligned with the flow
direction 18 of the hydrocarbon-containing gas stream in the vessel 12.
[0023] Whereas in Figure 1 the labyrinth 24 and oxygen manifold 28 are located coaxial with
the axis 40 of the vessel 12, in Figure 2 the oxygen gas stream is introduced from
the side of the vessel. The configuration of Figure 2 results in the pipes 30 being
oriented perpendicular to the main length of the manifold 28, and the oxygen gas stream
must makes a right angle turn to exit the manifold 28 and enter the pipes 30. In contrast,
the design of Figure 1 requires no such right angle turn. As the presence of the turn
provides an additional possible place for particle impact to occur, the design of
Figure 1 may be preferred, particularly where no particle scrubbing or filtering of
the oxygen gas stream is performed in the oxygen gas supply upstream of the labyrinth.
[0024] Figure 3 is an illustration of another embodiment of a gas mixer 10. In the embodiment
of Figure 3 the oxygen gas inlet 22 and labyrinth are located coaxially within the
vessel 12. Consequently, there is no right angle turn between the oxygen gas manifold
28 and the pipes 30. Furthermore, unlike the embodiments of Figures 1 and 2, there
are no right angle turns in the hydrocarbon-containing gas stream in the gas mixer
either. The labyrinth 24 and manifold 28 are shown supported within the walls of the
vessel 12 by support brackets 46. Additionally, vibration of the oxygen pipes 30 is
prevented by means of pipe supports 44. The gases mix in the mixing zone 20 proximate
to the ends of the pipes 30.
[0025] As noted, the gas mixers 10 of this disclosure can be used either alone or in combination
with additional safeguards for minimizing the number and size of particles entering
the gas mixer from the oxygen feed system. For example, the features of the gas mixers
of Figures 1-4 design can be incorporated into a system which includes a subsystem
upstream of the gas mixer 10 and labyrinth 24, such as filter or wet scrubber, to
remove particles from the oxygen gas stream, or to filter the gas stream such that
any particles entering the gas mixer are sufficiently small to burn and cool upstream
of the gas mixing zone, i.e., within the labyrinth 24. Figure 5 shows one possible
configuration of such as system. An oxygen gas supply line 22 is connected to a source
of oxygen gas and supplies the gas to a wet scrubber 100. The wet scrubber is designed
to remove particles down to a particular size using any suitable wet scrubber technology
known in the art. Various preferred wet scrubbing systems for a oxygen gas stream
are described in
WO-A-2009/078900. The outlet of the wet scrubber 100 is connected to a further supply pipe 102 which
is preferably constructed from a corrosion-resistant material, such as Monel or stainless
steel. The oxygen gas supplied along pipe 102 is fed to a labyrinth 24 and from there
to an oxygen gas manifold 28 positioned within the gas mixer 10. The oxygen fingers
30 have one end receiving the oxygen gas stream from the manifold 28 and an open opposite
(distal) end axially aligned with the flow of hydrocarbon-containing gas within the
vessel 12. The gases mix at the mixing zone 20. Mixed gas is collected in the gas
mixer 10 and fed via pipe 104 to a reaction chamber 106. The system shown in Figure
5 features both the impact labyrinth 24 ("L") in the oxygen stream and elongate oxygen
pipes 30 positioned within the vessel 12 containing a hydrocarbon-containing gas stream
16 featuring a low shear design.
[0026] Thus, from the above description, the embodiment of Figure 5 uses the physical layout
of the gas mixer 10, and optionally in conjunction with wet scrubbing of the oxygen
stream for particle removal, and the use of corrosion-resistant materials of construction
to reduce particle generation in the piping for the purpose of reducing the potential
for an ignition when mixing oxygen with a hydrocarbon-containing gas. The gas mixer
10 injects oxygen co-axially with the flow of the hydrocarbon-containing gas stream
to reduce the shear forces in the mixing zone 20 and extends the length of the oxygen
pipes 30 within the gas mixer 10 as may be required to promote destruction and/or
cooling of any particles entrained in the oxygen stream prior to its being mixed with
the hydrocarbon-rich gas. Note further that in the disclosed embodiments the oxygen
pipes 30 are straight for the entire length between the first end and the second end,
minimizing the likelihood of energetic particle impacts. The design of the oxygen
supply stream components are preferably such that the oxygen gas velocity is lowered
to reduce mixing shear within the mixing zone 20. The system further features improved
materials of construction to avoid corrosion derived particles in the hydrocarbon-containing
gas stream.
[0027] The co-current mixing arrangement within the gas mixer in the mixing zone 20 eliminates
recirculation zones at the oxygen pipe 30 outlets, which could promote growth of nascent
flame kernels and subsequent flame stabilization, should hot particle breakthrough
occur. Instead, a nascent flame kernel will be rapidly convected downstream towards
the non-flammable (rich) zone of well-mixed gas, increasing the probability of flame
extinguishment as opposed to flash-back. Furthermore, the design of the long, straight
oxygen pipes 30 is such that any particles surviving the labyrinth do not experience
energetic wall impacts near the oxygen pipe outlets. The low shear mixing as described
above also reduces break-up of flakes or other particles which may be entrained in
the hydrocarbon-containing gas stream.
[0028] In addition to reducing the probability of hot particle ignition, the gas mixer described
herein, is suitable for retrofit in existing mixers such as described in the above-referenced
prior art '534 patent, by incorporation of the labyrinth into the oxygen gasstream
upstream of the oxygen gas manifold and oxygen fingers. As shown in Figures 1-3, several
alternative layouts may be used. The preferred design features in-line entry of the
oxygen such that the oxygen inlet is as far upstream as possible from the mixing zone
and subsequent to the labyrinth there are no right-angled turns in the oxygen flow
path (see Figures 1 and 3). Alternatively the oxygen may be introduced from the side
(see Figure 2). The preferred design features in-line entry of both the oxygen and
hydrocarbon gas (Figure 3). Alternatively, the hydrocarbon gas may be introduced from
the side in order to accommodate retrofit needs (Figures 1, 2 and 5).
[0029] In some situations, particularly in relatively small EO production plants, plants
devoted to production of EO derivative products, or plants with limited on-site storage
capacity for finished product, it may be desirable to operate the EO production gas
mixer of this disclosure in a high "turn-down" operating mode, in which the operating
rate of the gas mixer is substantially reduced from its normal or designed operating
rate. For example, a turn down rate of 90 % is envisioned for the low shear mixers
of this disclosure, i.e., one in which the plant operates at only 10 % of its original
design capacity. In such a mode, the oxygen gas feed rate is only 10 % of its designed
rate. Modification of the oxygen fingers may be made in a high turn down mode to provide
for more oxygen gas injection points, and to increase the length of the gas mixer
in the region downstream of the oxygen gas injection point(s) to allow for good mixing
between the oxygen gas and the cycle gas. Further examples of high turn down modes
of operation include operation of the EO gas mixer an operating rate of between 10
and 70 percent of the normal, designed operating rate (turn down rates of between
30 and 90 percent).
[0030] While presently preferred embodiments have been described with particularity, variation
from the specifics of the disclosed embodiments may be made without departure from
the scope of the invention. All questions concerning scope of the invention are to
be determined by reference to the appended claims.
1. A gas mixer for mixing a first gas stream with a second gas stream at a mixing point
within the gas mixer, comprising:
a) an impact labyrinth in the first gas stream, the impact labyrinth comprising structures
forming a tortuous path through which the first gas stream must pass en route to the
mixing point, the impact labyrinth fostering ignition of particles entrained in the
first gas stream;
b) a plurality of elongate pipes each having an opening, the plurality of pipes receiving
the first gas stream from the impact labyrinth and carrying the first gas stream to
the mixing point, and
c) a vessel carrying the second gas stream, the second gas stream having a flow direction,
wherein the plurality of pipes are positioned within the vessel and the openings of
the pipes are substantially aligned with the flow direction of the second gas stream
at the mixing point.
2. The gas mixer of claim 1, wherein the vessel is in the form of a pipe having a longitudinal
axis and wherein the plurality of pipes and the openings of such pipes are oriented
in alignment with the longitudinal axis.
3. The gas mixer of claim 1 or claim 2, wherein the plurality of pipes have a first end
and second end forming the opening and wherein the pipes are straight for the entire
length between the first end and the second end.
4. The gas mixer of any of claims 1-3, including means for supplying an oxygen-containing
gas as the first gas stream and a hydrocarbon-containing gas as the second gas stream.
5. The gas mixer of claim 1, wherein the gas mixer further comprises an oxygen manifold
connected to the labyrinth downstream of the labyrinth and wherein the pipes have
a first end connected to the oxygen manifold and a second end having an opening for
introducing the oxygen-containing gas stream carried in the pipes into the hydrocarbon
gas stream at the mixing point.
6. The gas mixer of claim 1 or claim 5, wherein the pipes are substantially straight
for their entire length between the manifold and the openings thereof
7. The gas mixer of any of claims 3-6, wherein the pipes have a sufficient length such
that particles ignited in the impact labyrinth substantially cool prior to arrival
at the mixing point.
8. The gas mixer of any of claims 4-7, wherein the structures comprise an array of parallel
corrugated structures arranged in alignment with the direction of flow of the oxygen
gas stream.
9. The gas mixer of claim 8, wherein the corrugated structures are made from a material
selected from the group of materials consisting of carbon steel, stainless steel,
and Hastelloy C.
10. A gas mixing system comprising the gas mixer as recited in claim 1 and further comprising
a subsystem removing particles from the first gas stream upstream of the labyrinth.
11. The gas mixing system as recited in claim 10, wherein the subsystem comprises a wet
scrubber.
12. A method of mixing a hydrocarbon-containing gas stream with an oxygen-containing gas
stream, comprising the steps of:
supplying the oxygen-containing gas stream to an impact labyrinth comprising structures
forming a tortuous path through which the oxygen-containing gas stream must pass to
flow through the labyrinth;
flowing the oxygen-containing gas stream through the labyrinth;
directing the oxygen-containing gas stream from the labyrinth into a plurality of
pipes; and
directing the oxygen-containing gas stream out of the pipes into the hydrocarbon-containing
gas stream at a mixing point within a gas mixer,
wherein the impact labyrinth fosters ignition of particles contained in the oxygen-containing
gas stream.
13. The method of claim 12, wherein the oxygen-containing gas stream is introduced into
the hydrocarbon-containing gas stream in a flow direction which is substantially aligned
with a flow direction of the second gas stream at the mixing point.
14. The method of claim 12 or claim 13, further comprising the step of providing a manifold
at an outlet of the labyrinth, wherein the pipes have a first end connected to manifold
and a second end forming an opening for directing the oxygen-containing gas stream
out of the pipes, and wherein the pipes are substantially straight for their entire
length between the manifold and the openings thereof.
1. Eine Gasmischvorrichtung zum Mischen eines ersten Gasstroms mit einem zweiten Gasstrom
an einem Mischpunkt innerhalb der Gasmischvorrichtung, die Folgendes beinhaltet:
a) ein Stoßlabyrinth im ersten Gasstrom, wobei das Stoßlabyrinth Strukturen beinhaltet,
die einen gewundenen Weg bilden, den der erste Gasstrom auf der Strecke zum Mischpunkt
durchlaufen muss, wobei das Stoßlabyrinth eine Entzündung von im ersten Gasstrom mitgeschleppten
Teilchen fördert;
b) eine Vielzahl lang gestreckter Rohre, jeweils mit einer Öffnung, wobei die Vielzahl
von Rohren den ersten Gasstrom aus dem Stoßlabyrinth aufnimmt und den ersten Gasstrom
an den Mischpunkt überträgt, und
c) einen den zweiten Gasstrom übertragenden Behälter, wobei der zweite Gasstrom
eine Fließrichtung aufweist,
wobei die Vielzahl von Rohren innerhalb des Behälters positioniert ist und die Öffnungen
der Rohre im Wesentlichen an der Fließrichtung des zweiten Gasstroms am Mischpunkt
ausgerichtet sind.
2. Gasmischvorrichtung gemäß Anspruch 1, wobei der Behälter die Form eines Rohrs mit
einer Längsachse hat und wobei die Vielzahl von Rohren und die Öffnungen dieser Rohre
in Ausrichtung an der Längsachse orientiert sind.
3. Gasmischvorrichtung gemäß Anspruch 1 oder Anspruch 2, wobei die Vielzahl von Rohren
ein erstes Ende und ein zweites Ende, das die Öffnung bildet, aufweist und wobei die
Rohre über die gesamte Länge zwischen dem ersten Ende und dem zweiten Ende gerade
sind.
4. Gasmischvorrichtung gemäß einem der Ansprüche 1-3, die Mittel zum Zuführen eines sauerstoffhaltigen
Gases als den ersten Gasstrom und eines kohlenwasserstoffhaltigen Gases als den zweiten
Gasstrom umfasst.
5. Gasmischvorrichtung gemäß Anspruch 1, wobei die Gasmischvorrichtung ferner einen Sauerstoffverteiler,
der mit dem Labyrinth verbunden und dem Labyrinth nachgeordnet ist, beinhaltet und
wobei die Rohre ein erstes Ende, das mit dem Sauerstoffverteiler verbunden ist, und
ein zweites Ende mit einer Öffnung zum Einführen des in den Rohren übertragenen sauerstoffhaltigen
Gasstroms in den Kohlenwasserstoffgasstrom am Mischpunkt aufweisen.
6. Gasmischvorrichtung gemäß Anspruch 1 oder Anspruch 5, wobei die Rohre über ihre gesamte
Länge zwischen dem Verteiler und den Öffnungen davon im Wesentlichen gerade sind.
7. Gasmischvorrichtung gemäß einem der Ansprüche 3-6, wobei die Rohre eine hinreichende
Länge aufweisen, sodass im Stoßlabyrinth entzündete Teilchen vor dem Ankommen am Mischpunkt
im Wesentlichen abkühlen.
8. Gasmischvorrichtung gemäß einem der Ansprüche 4-7, wobei die Strukturen eine Gruppierung
paralleler gewellter Strukturen, die in Ausrichtung an der Richtung des Fließens des
Sauerstoffgasstroms angeordnet sind, beinhalten.
9. Gasmischvorrichtung gemäß Anspruch 8, wobei die gewellten Strukturen aus einem Material,
das aus der aus Kohlenstoffstahl, rostfreiem Stahl und Hastelloy C bestehenden Gruppe
von Materialien ausgewählt ist, hergestellt sind.
10. Ein Gasmischsystem, das die Gasmischvorrichtung gemäß Anspruch 1 beinhaltet und ferner
ein Untersystem, das Teilchen aus dem ersten Gasstrom entfernt und dem Labyrinth vorgeordnet
ist, beinhaltet.
11. Gasmischsystem gemäß Anspruch 10, wobei das Untersystem einen Nassreiniger beinhaltet.
12. Ein Verfahren zum Mischen eines kohlenwasserstoffhaltigen Gasstroms mit einem sauerstoffhaltigen
Gasstrom, das die folgenden Schritte beinhaltet:
Zuführen des sauerstoffhaltigen Gasstroms an ein Stoßlabyrinth, das Strukturen beinhaltet,
die einen gewundenen Weg bilden, den der sauerstoffhaltige Gasstrom durchlaufen muss,
um durch das Labyrinth zu fließen;
Fließen des sauerstoffhaltigen Gasstroms durch das Labyrinth;
Leiten des sauerstoffhaltigen Gasstroms aus dem Labyrinth in eine Vielzahl von Rohren;
und
Leiten des sauerstoffhaltigen Gasstroms aus den Rohren in den kohlenwasserstoffhaltigen
Gasstrom an einem Mischpunkt innerhalb einer Gasmischvorrichtung,
wobei das Stoßlabyrinth eine Entzündung von im sauerstoffhaltigen Gasstrom enthaltenen
Teilchen fördert.
13. Verfahren gemäß Anspruch 12, wobei der sauerstoffhaltige Gasstrom in den kohlenwasserstoffhaltigen
Gasstrom in einer Fließrichtung, die im Wesentlichen an einer Fließrichtung des zweiten
Gasstroms am Mischpunkt ausgerichtet ist, eingeführt wird.
14. Verfahren gemäß Anspruch 12 oder Anspruch 13, das ferner den Schritt des Bereitstellens
eines Verteilers an einem Auslass des Labyrinths beinhaltet, wobei die Rohre ein erstes
Ende, das mit dem Verteiler verbunden ist, und ein zweites Ende, das eine Öffnung
bildet, um den sauerstoffhaltigen Gasstrom aus den Rohren zu leiten, aufweisen und
wobei die Rohre über ihre gesamte Länge zwischen dem Verteiler und den Öffnungen davon
im Wesentlichen gerade sind.
1. Un mélangeur de gaz destiné à mélanger un premier flux de gaz avec un deuxième flux
de gaz au niveau d'un point de mélange au sein du mélangeur de gaz, comprenant:
a) un labyrinthe d'impact dans le premier flux de gaz, le labyrinthe d'impact comprenant
des structures formant un circuit tortueux par lequel le premier flux de gaz doit
passer en chemin vers le point de mélange, le labyrinthe d'impact favorisant l'inflammation
de particules entraînées dans le premier flux de gaz ;
b) une pluralité de tuyaux allongés possédant chacun un orifice, la pluralité de tuyaux
recevant le premier flux de gaz du labyrinthe d'impact et transportant le premier
flux de gaz jusqu'au point de mélange, et
c) un récipient transportant le deuxième flux de gaz, le deuxième flux de gaz ayant
une direction d'écoulement,
dans lequel la pluralité de tuyaux sont positionnés au sein du récipient et les orifices
des tuyaux sont substantiellement alignés avec la direction d'écoulement du deuxième
flux de gaz au niveau du point de mélange.
2. Le mélangeur de gaz de la revendication 1, dans lequel le récipient se présente sous
la forme d'un tuyau ayant un axe longitudinal et dans lequel la pluralité de tuyaux
et les orifices de ces tuyaux sont orientés en alignement avec l'axe longitudinal.
3. Le mélangeur de gaz de la revendication 1 ou de la revendication 2, dans lequel la
pluralité de tuyaux possèdent une première extrémité et deuxième extrémité formant
l'orifice et dans lequel les tuyaux sont droits sur toute la longueur entre la première
extrémité et la deuxième extrémité.
4. Le mélangeur de gaz de n'importe lesquelles des revendications 1 à 3, comportant des
moyens pour apporter un gaz oxygéné en tant que premier flux de gaz et un gaz hydrocarboné
en tant que deuxième flux de gaz.
5. Le mélangeur de gaz de la revendication 1, dans lequel le mélangeur de gaz comprend
en outre un collecteur d'oxygène raccordé au labyrinthe en aval du labyrinthe et dans
lequel les tuyaux possèdent une première extrémité raccordée au collecteur d'oxygène
et une deuxième extrémité possédant un orifice pour introduire le flux de gaz oxygéné
transporté dans les tuyaux dans le flux de gaz d'hydrocarbure au niveau du point de
mélange.
6. Le mélangeur de gaz de la revendication 1 ou de la revendication 5, dans lequel les
tuyaux sont substantiellement droits sur toute leur longueur entre le collecteur et
les orifices de ceux-ci.
7. Le mélangeur de gaz de n'importe lesquelles des revendications 3 à 6, dans lequel
les tuyaux ont une longueur suffisante pour que des particules enflammées dans le
labyrinthe d'impact refroidissent substantiellement avant d'arriver au point de mélange.
8. Le mélangeur de gaz de n'importe lesquelles des revendications 4 à 7, dans lequel
les structures comprennent un arrangement de structures ondulées parallèles aménagées
en alignement avec la direction d'écoulement du flux de gaz oxygène.
9. Le mélangeur de gaz de la revendication 8, dans lequel les structures ondulées sont
réalisées à partir d'un matériau sélectionné dans le groupe de matériaux constitué
d'acier au carbone, d'acier inoxydable, et d'Hastelloy C.
10. Un système de mélange de gaz comprenant le mélangeur de gaz tel qu'énoncé dans la
revendication 1 et comprenant en outre un sous-système retirant des particules du
premier flux de gaz en amont du labyrinthe.
11. Le système de mélange de gaz tel qu'énoncé dans la revendication 10, dans lequel le
sous-système comprend un dépoussiéreur par voie humide.
12. Un procédé de mélange d'un flux de gaz hydrocarboné avec un flux de gaz oxygéné, comprenant
les étapes consistant à :
apporter le flux de gaz oxygéné jusqu'à un labyrinthe d'impact comprenant des structures
formant un circuit tortueux par lequel le flux de gaz oxygéné doit passer pour s'écouler
dans le labyrinthe ;
faire s'écouler le flux de gaz oxygéné dans le labyrinthe ;
diriger le flux de gaz oxygéné du labyrinthe dans une pluralité de tuyaux ; et
diriger le flux de gaz oxygéné hors des tuyaux et dans le flux de gaz hydrocarboné
au niveau d'un point de mélange au sein d'un mélangeur de gaz,
dans lequel le labyrinthe d'impact favorise l'inflammation de particules contenues
dans le flux de gaz oxygéné.
13. Le procédé de la revendication 12, dans lequel le flux de gaz oxygéné est introduit
dans le flux de gaz hydrocarboné suivant une direction d'écoulement qui est substantiellement
alignée avec une direction d'écoulement du deuxième flux de gaz au niveau du point
de mélange.
14. Le procédé de la revendication 12 ou de la revendication 13, comprenant en outre l'étape
consistant à fournir un collecteur au niveau d'une sortie du labyrinthe, dans lequel
les tuyaux possèdent une première extrémité raccordée au collecteur et une deuxième
extrémité formant un orifice pour diriger le flux de gaz oxygéné hors des tuyaux,
et dans lequel les tuyaux sont substantiellement droits sur toute leur longueur entre
le collecteur et les orifices de ceux-ci.